TY - JOUR
T1 - Enhanced Transmit-Receive Beamforming for Frequency Diverse Array
AU - Xu, Yanhong
AU - Luk, Kwai-Man
PY - 2020/7
Y1 - 2020/7
N2 - Frequency diverse arrays (FDAs) have a more flexible beamforming ability than phased arrays since they provide degrees of freedom (DOFs) in both range and angle domains by applying a tiny frequency offset across adjacent elements. Nevertheless, the beampattern of an FDA is not only range-angle-dependent but also time variant when only considering the transmit procedure. In this article, an enhanced transmit-receive beamforming approach is proposed to achieve the time-invariant and symmetrical beampattern with only a single maximum value in range-angle space. First, two FDAs with symmetric logarithmically increasing frequency offsets (SLFOs) are proposed to achieve a maximum value at the desired range-angle region while exhibiting sidelobe in the region out of interest. Second, the receive procedure is devised to compensate the time-variant terms with multiple mixers corresponding to different frequencies. To maintain the shape of the mainbeam and simultaneously reduce the peak sidelobe level (PSLL) of the pattern, the optimization problem is constructed into a semidefinite programming problem. Numerical results show that both of the two proposed FDAs exhibit fine focused, symmetrically distributed transmit-receive beampatterns in range and angle domains.
AB - Frequency diverse arrays (FDAs) have a more flexible beamforming ability than phased arrays since they provide degrees of freedom (DOFs) in both range and angle domains by applying a tiny frequency offset across adjacent elements. Nevertheless, the beampattern of an FDA is not only range-angle-dependent but also time variant when only considering the transmit procedure. In this article, an enhanced transmit-receive beamforming approach is proposed to achieve the time-invariant and symmetrical beampattern with only a single maximum value in range-angle space. First, two FDAs with symmetric logarithmically increasing frequency offsets (SLFOs) are proposed to achieve a maximum value at the desired range-angle region while exhibiting sidelobe in the region out of interest. Second, the receive procedure is devised to compensate the time-variant terms with multiple mixers corresponding to different frequencies. To maintain the shape of the mainbeam and simultaneously reduce the peak sidelobe level (PSLL) of the pattern, the optimization problem is constructed into a semidefinite programming problem. Numerical results show that both of the two proposed FDAs exhibit fine focused, symmetrically distributed transmit-receive beampatterns in range and angle domains.
KW - Array signal processing
KW - Frequency diversity
KW - Frequency modulation
KW - Transmitting antennas
KW - Phased arrays
KW - Receivers
KW - Enhanced beamforming
KW - frequency diverse array (FDA)
KW - low sidelobe level
KW - semidefinite programming
KW - transmit-receive mode
KW - RANGE
KW - RADAR
KW - Array signal processing
KW - Frequency diversity
KW - Frequency modulation
KW - Transmitting antennas
KW - Phased arrays
KW - Receivers
KW - Enhanced beamforming
KW - frequency diverse array (FDA)
KW - low sidelobe level
KW - semidefinite programming
KW - transmit-receive mode
KW - RANGE
KW - RADAR
KW - Array signal processing
KW - Frequency diversity
KW - Frequency modulation
KW - Transmitting antennas
KW - Phased arrays
KW - Receivers
KW - Enhanced beamforming
KW - frequency diverse array (FDA)
KW - low sidelobe level
KW - semidefinite programming
KW - transmit-receive mode
KW - RANGE
KW - RADAR
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UR - https://www.scopus.com/record/pubmetrics.uri?eid=2-s2.0-85088020982&origin=recordpage
U2 - 10.1109/TAP.2020.2977717
DO - 10.1109/TAP.2020.2977717
M3 - RGC 21 - Publication in refereed journal
SN - 0018-926X
VL - 68
SP - 5344
EP - 5352
JO - IEEE Transactions on Antennas and Propagation
JF - IEEE Transactions on Antennas and Propagation
IS - 7
M1 - 9028091
ER -